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GSCHWIND, R.

Publications and source records attributed to GSCHWIND, R..

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IncC plasmid genome rearrangements influence the vertical and horizontal transmission tradeoff in Escherichia coli

It has been shown that an evolutionary tradeoff between vertical (host growth rate) and horizontal (plasmid conjugation) transmissions contribute to global plasmid fitness. As conjugative IncC plasmids are important for the spread of multidrug resistance (MDR), in a broad range of bacterial hosts, we investigated vertical and horizontal transmissions of two multidrug-resistant IncC plasmids according to their backbones and MDR-region rearrangements, upon plasmid entry into a new host. We observed plasmid genome deletions after conjugation in three diverse natural Escherichia coli clinical strains, varying from null to high number depending on the plasmid, all occurring in the MDR-region. The plasmid burden on bacterial fitness depended more on the strain background than on the structure of the MDR-region, deletions appearing to have no impact. Besides, we observed an increase in plasmid transfer rate, from ancestral host to new clinical recipient strains, when the IncC plasmid was rearranged. Finally, using a second set of conjugation experiments, we investigated the evolutionary tradeoff of the IncC plasmid during the critical period of plasmid establishment in E. coli K-12, by correlating the transfer rates of deleted or non-deleted IncC plasmids and their costs on the recipient strain. Plasmid deletions strongly improved conjugation efficiency with no negative growth effect. Our findings indicate that the flexibility of the MDR-region of the IncC plasmids can promote their dissemination, and provide diverse opportunities to capture new resistance genes. In a broader view, they suggest that the vertical-horizontal transmission tradeoff can be manipulated by the plasmid to improve its fitness.

microbiology↗

Inter-phylum circulation of a beta-lactamase - encoding gene: a rare but observable event

Beta-lactam degradation by beta-lactamases is the most common mechanism of beta-lactam resistance in Gram-negative bacteria. Beta-lactamase encoding genes can be transferred between closely-related bacteria, but spontaneous inter-phylum transfers (between distantly related bacteria) has never been reported. Here, we describe an extended-spectrum beta-lactamase (ESBL)-encoding gene (blaMUN-1) shared between the Peudomonadota and Bacteroidota phyla. An Escherichia coli strain was isolated from a patient in Munster (Germany). Its genome was sequenced (Illumina and Nanopore). The ESBL encoding gene was cloned and the corresponding enzyme was characterised. Distribution of the gene among bacteria was studied with BLASTN using RefSeq Genomes databases. Frequency of its closest homolog in the Global Microbial Gene Catalog (GMGC) was also analysed. The blaMUN-1 gene found in the E. coli strain, encoded for an Ambler subclass A2 beta-lactamase with 82.2% amino acid identity to TLA-1 and it was found to confer an ESBL phenotype. blaMUN-1 was found in four copies, two chromosomal copies and two located on a phage-plasmid p0111. Each copy was found on a 7.6kb genomic island associated with mobility. blaMUN-1 was found distributed among the Bacteroidales order and in Sutterella wardsworthensis (Pseudomonadota). Its closest homolog in the GMGC was found predominantly and frequently in the Human gut sub-catalog (found in 26.8% of the samples). This is the first reported case of inter-phylum transfer of an ESBL-encoding gene, between the Bacteroidota and Pseudomonadota phyla. While the gene was frequently found in the human gut, inter-phylum transfer was rare, suggesting that inter-phylum barriers are strong but not impassable.

microbiology↗